DocumentCode :
948183
Title :
Control of differential gain, nonlinear gain and damping factor for high-speed application of GaAs-based MQW lasers
Author :
Ralston, John D. ; Weisser, Stefan ; Esquivias, Ignacio ; Larkins, Eric ; Rosenzweig, Josef ; Tasker, Paul ; Fleissner, Joachim
Author_Institution :
Fraunhofer-Inst. fuer Angewandte Festkorperphysik, Freiburg, Germany
Volume :
29
Issue :
6
fYear :
1993
fDate :
6/1/1993 12:00:00 AM
Firstpage :
1648
Lastpage :
1659
Abstract :
Utilizing small-signal direct modulation and relative intensity noise measurements, the authors investigate changes in the modulation response, the differential gain ∂g/∂n, the nonlinear gain coefficient ∈, and the damping factor K, which result from three structural modifications to GaAs-based multiple quantum well lasers: the addition of strain in the quantum wells; and increase in the number of quantum wells; and the addition of p-doping in the quantum wells. These modifications are assessed in terms of their potential for reducing the drive current required to achieve a given modulation bandwidth, for increasing the maximum intrinsic modulation bandwidth of the laser, and for improving the prospects for monolithic layer/transistor integration. It has been possible to simultaneously increase δgn and decrease K, yielding very efficient high-speed modulation (20 GHz at a DC bias current of 50 mA) and the first semiconductor lasers to achieve a direct modulation bandwidth of 30 GHz under DC bias
Keywords :
III-V semiconductors; gallium arsenide; optical modulation; semiconductor device noise; semiconductor lasers; semiconductor quantum wells; 30 GHz; 50 mA; GaAs; damping factor; differential gain; direct current bias; drive current; maximum intrinsic modulation bandwidth; modulation response; monolithic layer/transistor integration; nonlinear gain coefficient; p-doping; relative intensity noise measurements; semiconductor lasers; small-signal direct modulation; strain; structural modifications; Bandwidth; Damping; Digital modulation; High speed optical techniques; Masers; Optical modulation; Optical receivers; Optical transmitters; Quantum well devices; Quantum well lasers;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/3.234417
Filename :
234417
Link To Document :
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